Theory of the linear and nonlinear optical properties of semiconductor microcrystallites

S. Schmitt-Rink, D. A. B. Miller, and D. S. Chemla
Phys. Rev. B 35, 8113 – Published 15 May 1987
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Abstract

We analyze theoretically the optical properties of ideal semiconductor crystallites so small that they show quantum confinement in all three dimensions [quantum dots (QD’s)]. In the limit of a QD much smaller than the bulk exciton size, the linear spectrum will be a series of lines, and we consider the phonon broadening of these lines. The lowest interband transition will saturate like a two-level system, without exchange and Coulomb screening. Depending on the broadening, the absorption and the changes in absorption and refractive index resulting from saturation can become very large, and the local-field effects can become so strong as to give optical bistability without external feedback. The small QD limit is more readily achieved with narrow-band-gap semiconductors.

  • Received 28 August 1986

DOI:https://doi.org/10.1103/PhysRevB.35.8113

©1987 American Physical Society

Authors & Affiliations

S. Schmitt-Rink

  • AT&T Bell Laboratories, 600 Mountain Avenue, Murray Hill, New Jersey 07974-2070

D. A. B. Miller and D. S. Chemla

  • AT&T Bell Laboratories, Crawfords Corner Road, Holmdel, New Jersey 07733-1988

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Vol. 35, Iss. 15 — 15 May 1987

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